Out-of-equilibrium dynamics and thermalization of a dipolar spin ladder
ORAL
Abstract
Ultracold dipolar particles pinned in optical lattices or tweezers provide an excellent platform for studying out-of-equilibrium dynamics with dipole-mediated couplings. Starting with an initial state with spins of opposite orientation in each of the legs of a ladder lattice, we show that spin relaxation displays three distinct dynamical regimes: (i) ergodic, characterized by the fast relaxation towards equilibrium of correlated pairs of excitations generated at exponentially fast rates from the initial state; (ii) metastable, in which the state is quasi-localized in the initial state and only decays at exceedingly long timescales, resembling false vacuum decay; and, surprisingly, (iii) partially-relaxed, with coexisting fast partial relaxation and very long-lived partial quasi-localization. Realizing these intriguing dynamics is within reach of current state-of-the-art experiments in dipolar gases.
*L.S. and G.A.D.-C. acknowledge support of the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany's Excellence Strategy – EXC-2123 QuantumFrontiers – 390837967. A.M.R acknowledges support from the AFOSR MURI, ARO W911NF-19-1-0210, NSF JILA-PFC PHY-2317149, NSF QLCI-2016244, the DOE Quantum Systems Accelerator (QSA) and NIST.
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Publication: arXiv:2311.18091
Phys. Rev. A 108, 013313
Presenters
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Thomas Bilitewski
- Oklahoma State University